Magnetic cylinder feeding mechanism

By designing a magnetic cylindrical loading mechanism including a rotating shaft body and a magnet, the problems of low efficiency and high cost of existing magnetic material loading equipment are solved, and automatic loading is realized, efficiency is improved and cost is reduced.

CN223002234UActive Publication Date: 2025-06-20深圳市天一智能科技有限公司
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Patent Information

Application Number
CN202420943370.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-04-30
Publication Date
2025-06-20
Estimated Expiration
2034-04-30

AI Technical Summary

Technical Problem

The existing magnetic material loading equipment requires manual operation, which is inefficient and costly, and the existing automation equipment is high and difficult to promote.

Method used

A magnetic cylindrical feeding mechanism is designed, including a box and a rotating shaft assembly. The rotating shaft assembly is composed of a cylindrical shaft body, a motor, a through hole and a magnet. By driving the shaft body to rotate through the motor, the magnet adsorbs magnetic materials, scrapers and auxiliary materials for the injection fiber.

Benefits of technology

Automatic loading of magnetic materials is realized, which improves loading efficiency, reduces manual operation costs, and has relatively low equipment costs.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223002234U_ABST
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Abstract

The utility model belongs to the field of automation equipment, and provides a magnetic cylinder feeding mechanism which comprises a box body and a rotating shaft assembly arranged in the box body, the rotating shaft assembly comprises a columnar shaft body and a motor driving the shaft body to rotate in the box body, and the rotating shaft assembly is arranged in the box body. A plurality of rows of through holes used for containing cylindrical products are formed in the surface of the shaft body, magnets are arranged at the bottoms of the through holes, and when the shaft body rotates, the magnetic cylindrical products in the box body are attracted into the through holes; according to the magnetic material feeding device, the through hole is formed in the surface of the shaft body, and the magnet is arranged in the through hole, so that when the shaft body rotates, magnetic materials in the box body can be automatically adsorbed into the through hole, then the materials are driven to the upper surface of the shaft body to be taken away manually or by a machine, and the feeding efficiency of the magnetic materials is greatly improved.
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Description

Technical Field

[0001] The utility model relates to the field of automation equipment, in particular to a magnetic cylinder feeding mechanism. Background Art

[0002] At present, the magnetic material feeding on the market adopts manual tray loading and material distribution. Workers need to manually pick out magnetic materials, which has various defects, slow efficiency and high labor costs.

[0003] There are also visual recognition means cooperating with manipulators to pick out magnetic materials, but such equipment is costly and difficult to promote. Summary of the Utility Model

[0004] In view of the above technical problems, the utility model provides a magnetic cylinder feeding mechanism.

[0005] Other features and advantages of the present disclosure will become apparent from the following detailed description, or be learned in part through the practice of the present disclosure.

[0006] The utility model discloses a magnetic cylinder feeding mechanism, which includes a box body and a rotating shaft assembly arranged in the box body. The rotating shaft assembly includes a columnar shaft body and a motor for driving the shaft body to rotate in the box body. Multiple rows of through holes for accommodating cylindrical products are arranged on the surface of the shaft body, and magnets are arranged at the bottoms of the through holes. When the shaft body rotates, the magnetic cylindrical products in the box body are adsorbed into the through holes.

[0007] Furthermore, a plurality of positioning holes are arranged on both sides of the shaft body, a cylinder is arranged on one side of the box body, and a positioning column that can be inserted into the positioning holes is arranged at the driving end of the cylinder. By driving the positioning column with the cylinder, the positioning column can be inserted into the positioning holes to ensure the stop of the shaft body and prevent the shaft body from rotating again after stopping.

[0008] Furthermore, the bottom inside the box body forms an arc surface to ensure that the magnetic materials inside the box body are within the adsorption range of the magnets in the through holes.

[0009] Furthermore, a scraping plate is arranged on the box body. The scraping plate has an inclined surface and is used to scrape off other magnetic cylindrical products except those adsorbed in the through holes. Since the materials are magnetic and easily adsorb to each other, when the materials are adsorbed into the through holes, their tails may carry other materials. The scraping plate is set to scrape off the excess materials.

[0010] Furthermore, opposed fiber optic sensors for detecting magnetic cylindrical products are arranged on both sides of the box body, which are used to detect whether the magnetic materials are inserted into the through holes.

[0011] Further, the shaft body is provided with a plurality of channels, and the plurality of channels are respectively located at the bottom of each row of the through holes. A long strip magnet is inserted into each channel. Each row of through holes is adsorbed by one magnet, which improves the installation efficiency. Moreover, when the magnet needs to be magnetized, it is convenient to take out the magnet for magnetization or replacement.

[0012] The technical solution of the present disclosure has the following beneficial effects:

[0013] Based on providing through holes on the surface of the shaft body and magnets in the through holes, in this way, when the shaft body rotates, it can automatically adsorb the magnetic materials in the box into the through holes and drive the materials to its upper surface for manual or machine taking, greatly improving the feeding efficiency of the magnetic materials. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 is a schematic structural diagram of the magnetic cylindrical feeding mechanism in the embodiment of the present specification;

[0015] Figure 2 is a partial structural diagram of the magnetic cylindrical feeding mechanism in the embodiment of the present specification;

[0016] Figure 3 is a schematic structural diagram of the shaft body in the embodiment of the present specification.

[0017] Among them, the description of the reference numerals:

[0018] 1, box body; 21, shaft body; 211, through hole; 212, positioning hole; 213, channel; 22, motor; 23, cylinder; 24, positioning column; 25, scraper; 26, opposed fiber optic. DETAILED DESCRIPTION

[0019] Now, the exemplary embodiments will be described more fully with reference to the accompanying drawings.

[0020] The drawings are only schematic illustrations of the present disclosure. The same reference numerals in the drawings denote the same or similar parts, and thus the repeated description thereof will be omitted. It can be understood that the proportions of the various components in the drawings do not constitute a limitation of the present disclosure.

[0021] As Figures 1-3 shown, the embodiment of the present specification provides a magnetic cylindrical feeding mechanism, which includes a box body 1 and a rotating shaft assembly disposed in the box body 1. The rotating shaft assembly includes a columnar shaft body 21 and a motor 22 for driving the shaft body 21 to rotate in the box body 1. A plurality of rows of through holes 211 for accommodating cylindrical products are provided on the surface of the shaft body 21, and magnets are provided at the bottoms of the through holes 211. When the shaft body 21 rotates, the magnetic cylindrical products in the box body 1 are adsorbed into the through holes 211.

[0022] Further, a plurality of positioning holes 212 are provided on both sides of the shaft body 21, a cylinder 23 is provided on one side of the box body 1, and a positioning column 24 that can be inserted into the positioning hole 212 is provided at the driving end of the cylinder 23. By driving the positioning column 24 with the cylinder 23, the positioning column 24 can be inserted into the positioning hole 212, so as to ensure the stop of the shaft body 21 and prevent the shaft body 21 from rotating automatically again after stopping.

[0023] The bottom inside the box body 1 forms an arc surface to ensure that the magnetic material inside the box body 1 is within the adsorption range of the magnet in the through hole 211.

[0024] A scraper 25 is provided on the box body 1. The scraper 25 has an inclined surface and is used to scrape off other magnetic cylindrical products except those adsorbed within the through hole 211. Since the material is magnetic and easily adsorbs to each other, when the material is adsorbed into the through hole 211, its tail may carry other materials. By setting the scraper 25, the excess material can be scraped off.

[0025] On both sides of the box body 1, opposed fiber optics 26 for detecting magnetic cylindrical products are provided, which are used to detect whether the magnetic material is inserted into the through hole 211.

[0026] The shaft body 21 is provided with a plurality of channels 213, and the plurality of channels 213 are respectively located at the bottom of each row of through holes 211. A long magnet is inserted into the channels 213. Each row of through holes 211 is adsorbed by one magnet, which improves the installation efficiency. Moreover, when the magnet needs to be magnetized, it is convenient to take out the magnet for magnetization or replacement.

[0027] Working principle:

[0028] Based on the through holes 211 provided on the surface of the shaft body 21 and the magnets provided in the through holes 211, when the shaft body 21 rotates, it can automatically adsorb the magnetic material inside the box body 1 into the through holes 211, and drive the material to its upper surface for manual or machine taking, which greatly improves the feeding efficiency of the magnetic material.

[0029] After considering the specification and the practice of the disclosed utility model, those skilled in the art will readily think of other embodiments of the present disclosure. This application is intended to cover any variations, uses, or adaptations of the present disclosure, which follow the general principles of the present disclosure and include the common general knowledge or conventional technical means in the technical field not disclosed in the present disclosure.

Claims

1. A magnetic cylindrical feeding mechanism, characterized in that: The mechanism includes a box body and a rotating shaft assembly arranged in the box body, the rotating shaft assembly includes a cylindrical shaft body and a motor that drives the shaft body to rotate in the box body, a plurality of rows of through holes for accommodating cylindrical products are arranged on the surface of the shaft body, a magnet is arranged at the bottom of the through hole, and when the shaft body rotates, the magnetic cylindrical products in the box body are adsorbed into the through hole.

2. A magnetic cylindrical feeding mechanism according to claim 1, characterized in that: A plurality of positioning holes are arranged on both sides of the shaft body, a cylinder is arranged on one side of the box body, and a positioning column which can be inserted into the positioning hole is arranged at the driving end of the cylinder.

3. A magnetic cylindrical feeding mechanism according to claim 1, characterized in that: The bottom of the box body forms an arc surface.

4. A magnetic cylindrical feeding mechanism according to claim 1, characterized in that: A scraper is arranged on the box body, and the scraper has an inclined surface. The scraper is used to scrape off the magnetic cylindrical products adsorbed in the through hole.

5. A magnetic cylindrical feeding mechanism according to claim 1, characterized in that: Opposite-beam optical fibers for detecting magnetic cylindrical products are arranged on both sides of the box.

6. A magnetic cylindrical feeding mechanism according to claim 1, characterized in that: The shaft body is provided with a plurality of cavities, and the plurality of cavities are respectively located at the bottom of each row of through holes, and a long magnet is inserted into the cavity.